Sun Zemin, Yuan Mengwei, Shi Kefan, Liu Yuhui, Wang Di, Nan Caiyun, Li Huifeng, Sun Genban, Yang Xiaojing
Beijing Key Laboratory of Energy Conversion and Storage Materials and College of Chemistry, Beijing Normal University, Beijing, 100875, P.R. China.
Chemistry. 2020 Jun 5;26(32):7244-7249. doi: 10.1002/chem.201905844. Epub 2020 May 11.
NiFe layered double hydroxides (LDHs) have been denoted as benchmark non-noble-metal electrocatalysts for the oxygen evolution reaction (OER). However, for laminates of NiFe LDHs, the edge sites are active, but the basal plane is inert, leading to underutilization as catalysts for the OER. Herein, for the first time, light and electron-deficient Li ions are intercalated into the basal plane of NiFe LDHs. The results of theoretical calculations and experiments both showed that electrons would be transferred from near Ni to the surroundings of Li , resulting in electron-deficient properties of the Ni sites, which would function as "electron-hungry" sites, to enhance surface adsorption of electron-rich oxygen-containing groups, which would enhance the effective activity for the OER. As demonstrated by the catalytic performance, the Li-NiFe LDH electrodes showed an ultralow overpotential of only 298 mV at 50 mA cm , which was lower than that of 347 mV for initial NiFe LDHs and lower than that of 373 mV for RuO . Reasonable intercalation adjustment effectively activates laminated Ni sites and constructs the electron-deficient structure to enhance its electrocatalytic activity, which sheds light on the functional treatment of catalytic materials.
镍铁层状双氢氧化物(LDHs)已被视为析氧反应(OER)的基准非贵金属电催化剂。然而,对于镍铁LDHs的层压板,边缘位点具有活性,但基面是惰性的,导致其作为OER催化剂的利用率低下。在此,首次将光和电子缺乏的锂离子插入到镍铁LDHs的基面中。理论计算和实验结果均表明,电子将从靠近镍的位置转移到锂的周围环境,导致镍位点具有缺电子性质,这些位点将作为“缺电子”位点,增强富电子含氧基团的表面吸附,从而提高OER的有效活性。催化性能表明,Li-NiFe LDH电极在50 mA cm时仅表现出298 mV的超低过电位,低于初始镍铁LDHs的347 mV和RuO的373 mV。合理的插层调节有效地激活了层状镍位点并构建了缺电子结构,以增强其电催化活性,这为催化材料的功能处理提供了思路。